Czech J. Anim. Sci., 2009, 54(6):277-285 | DOI: 10.17221/1729-CJAS
Effects of lucerne particle size and source of dietary carbohydrates on in situ degradation and ruminal variables in sheep
- 1 Department of Animal Science, Isfahan University of Technology, Isfahan, Iran
- 2 Department of Animal Science, University of Mazandaran, Sari, Iran
- 3 Institute of Animal Science, University of Bonn, Bonn, Germany
The effects of altering forage particle size and source of rapidly degradable carbohydrates on in situ degradation and ruminal variables were studied in four Iranian male sheep. The study was designed as a Latin square with a 2 × 2 factorial arrangement of treatments including two carbohydrate sources (pelleted beet pulp vs. maize- and barley-based concentrate) and two lucerne particle sizes (2.38 vs. 0.94 mm). Kinetics of disappearance of lucerne, concentrates and mixed samples was studied in situ. Among feed samples, the degradation rate constant of lucerne dry matter was higher (P < 0.02) and disappearance of lucerne neutral detergent fibre (NDF) in 4 h of incubation was lower (P = 0.06) in diets with reduced particle size. The rapidly degradable fraction of lucerne samples was also affected by treatments. Other degradability components were not affected. The mean ruminal pH was lower in diets containing short hay than in those containing long hay (5.76 vs. 5.86, P < 0.006) and pH values were consistently lower immediately after feeding diets with short lucerne hay. The form of carbohydrates did not affect ruminal pH, however, altering the source of carbohydrates changed the pattern of pH over time. Total volatile fatty acid (VFA) concentration and proportions of individual VFA were similar but numerical differences indicated a lower acetate to propionate ratio in diets with short hay. Most of the affected variables were influenced by the particle size of forage to a larger extent than by the source of rapidly degradable carbohydrates or the interaction between them. So, when sheep diets contain no more than 250 g/kg starch, the source of dietary carbohydrates may not interact with forage particle size to affect DM degradability and ruminal fermentation.
Keywords: forage particle size; carbohydrates; rumen; degradation; sheep
Published: June 30, 2009 Show citation
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References
- Allen M.S., Mertens D.R. (1988): Evaluating constraints on fiber digestion by rumen microbes. Journal of Nutrition, 118, 261-270.
Go to original source...
Go to PubMed...
- AOAC (2002): Official Methods of Analysis. 17th ed. Association of Official Analytical Chemists. Arlington, USA.
- ASAE (1996): S424.1. Method of determining and expressing particle size of chopped forage materials by sieving. In: Standards American Soc. Agric. Eng., St. Joseph, USA.
- Bampids V.A., Robinson P.H. (2006): Citrus by-products as ruminant feeds: A review. Animal Feed Science of Technology, 128, 175-217.
Go to original source...
- Ben-Ghedalia D., Yosef E., Miron J., Est Y. (1989): The effect of starch- and pectin-rich diets on quantitative aspects of digestion in sheep. Animal Feed Science of Technology, 24, 289-298.
Go to original source...
- Bhattacharya A.N., Sleiman F.T. (1971): Beet pulp as a grain replacement for cattle and sheep. Journal of Dairy Science, 54, 89-94.
Go to original source...
- Broderick G.A., Kang J.H. (1980): Automated simultaneous determination of ammonia and total amino acids in rumen fluid and in vitro media. Journal of Dairy Science, 63, 64-75.
Go to original source...
Go to PubMed...
- Cannas A., Tedeschi L.O., Fox D.G., Pell A.N., Van Soest P.J. (2004): A mechanistic model for predicting the nutrient requirements and feed biological values for sheep. Journal of Animal Science, 82, 149-169.
Go to original source...
Go to PubMed...
- Carey D.A., Caton J.S., Biondini M. (1993): Influence of energy source on forage intake, digestibility, in situ forage degradation, and ruminal fermentation in beef steers fed medium-quality brome hay. Journal of Animal Science, 71, 2260-2269.
Go to original source...
Go to PubMed...
- Cooper S.D., Kyriazakis I., Oldham J.D. (1996): The effects of physical form of feed, carbohydrate source, and inclusion of sodium bicarbonate on the diet selections of sheep. Journal of Animal Science, 74, 1240-1251.
Go to original source...
Go to PubMed...
- Faichney G.J., Brown G.H. (2004): Effect of physical form of lucerne hay on rumination and the passage of particles from the rumen of sheep. Australian Journal of Agricultural Research, 55, 1263-1270.
Go to original source...
- Faichney G.J., Teleki E., Brown G.H. (2004): Effect of form of lucerne hay on digestion and rate of passage in sheep. Australian Journal of Agricultural Research, 55, 1253-1262.
Go to original source...
- Flachowsky G., Koch H., Tiroke K., Matthey M. (1993): Influence of the ratio between wheat straw and ground barley, ground corn or dried sugar beet pulp on in sacco dry matter degradation of ryegrass and wheat straw, rumen fermentation and apparent digestibility in sheep. Archives of Animal Nutrition, 43, 157-167.
Go to original source...
Go to PubMed...
- Grant R.J., Mertens D.R. (1992): Influence of buffer pH and raw corn starch addition on in vitro fiber digestion kinetics. Journal of Dairy Science, 75, 2762-2768.
Go to original source...
Go to PubMed...
- Hristov A.N., Ropp J.K. (2003): Effect of dietrary carbohydrate composition and availability on utilization of ruminal ammonia nitrogen for milk protein synthesis in dairy cows. Journal of Dairy Science, 86, 2416-2427.
Go to original source...
Go to PubMed...
- Krajcarsky-Hunt H., Plaizier J.C., Walton J.P., Spratt R., McBride B.W. (2002): Effect of subacute ruminal acidosis on in situ fiber digestion in lactating dairy cows. Journal of Dairy Science, 85, 570-573.
Go to original source...
Go to PubMed...
- Krause K.M., Combs D.K. (2003): Effects of forage particle size, forage source, and grain fermentability on performance and ruminal pH in midlactation cows. Journal of Dairy Science, 86, 1382-1397.
Go to original source...
Go to PubMed...
- Leiva E., Hall M.B., Van Horn H.H. (2000): Performance of dairy cattle fed citrus pulp or corn products as sources of neutral detergent-soluble carbohydrates. Journal of Dairy Science, 83, 2866-2875.
Go to original source...
Go to PubMed...
- Remesy C., Demigne C. (1989): Specific effects of fermentable carbohydrates on blood urea flux and ammonia absorption in the rat cecum. Journal of Nutrition, 119, 560-565.
Go to original source...
Go to PubMed...
- SAS (1999): User's guide: statistics, version 8, SAS Institute Inc., Cary, USA.
- Thomson D.J. (1972): Physical form of the diet in relation to rumen fermentation. The Proceedings of the Nutrition Society, 31, 127-134.
Go to original source...
Go to PubMed...
- Thomson D.J., Beever D.E., Coelho da Silva J.F., Armstrong D.G. (1972): The effect in sheep of physical form on the site of digestion of a dried lucerne diet. The British Journal of Nutrition, 28, 31-41.
Go to original source...
Go to PubMed...
- Udén P., Van Soest P.J. (1984): Investigation of the in situ bag technique and a comparison of the fermentation in heifers, sheep, ponies, and rabbits. Journal of Animal Science, 58, 213-221.
Go to original source...
Go to PubMed...
- Van Soest P.J., Robertson J., Lewis B. (1991): Methods for dietary fiber, neutral detergent fiber, and total nonstarch polysaccharides in relation to animal nutrition. Journal of Dairy Science, 74, 3583-3597.
Go to original source...
Go to PubMed...
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